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操控等离子体纳米腔-发射器混合系统中的手性光子产生:从弱耦合到强耦合。

Manipulating chiral photon generation from plasmonic nanocavity-emitter hybrid systems: from weak to strong coupling.

作者信息

Yang Jian, Hu Huatian, Zhang Qingfeng, Zu Shuai, Chen Wen, Xu Hongxing

机构信息

State Key Laboratory of Precision Spectroscopy, School of Physics and Electronic Science, East China Normal University, Shanghai 200241, China.

Hubei Key Laboratory of Optical Information and Pattern Recognition, Wuhan Institute of Technology, Wuhan 430205, China.

出版信息

Nanophotonics. 2024 Jan 16;13(3):357-368. doi: 10.1515/nanoph-2023-0738. eCollection 2024 Feb.

Abstract

By confining light into a deep subwavelength scale to match the characteristic dimension of quantum emitters, plasmonic nanocavities can effectively imprint the light emission with unique properties in terms of intensity, directionality, as well as polarization. In this vein, achiral quantum emitters can generate chiral photons through coupling with plasmonic nanocavities with either intrinsic or extrinsic chirality. As an important metric for the chiral-photon purity, the degree of circular polarization (DCP) is usually tuned by various scattered factors such as the nanocavity design, the emitter type, and the coupling strategy. The physical mechanisms of the chiral photon generation, especially when plasmons and emitters step into the strong coupling regime, are less explored. In this paper, we extended the coupled-oscillator and Jaynes-Cummings models to their chiral fashion to account for the above factors within a single theoretical framework and investigated the chiroptical properties of a plasmonic nanocavity-emitter hybrid system from weak to strong coupling. It was demonstrated that both the circular differential scattering and prominent scattering DCP rely on the intrinsic chirality generated by breaking the mirror symmetry with the emitter, and is thereby tunable by the coupling strength. However, the luminescence DCP (as high as 87 %) is closely related to the extrinsic chirality of the bare nanocavity and independent of the coupling strength. The results thus reveal two different physical mechanisms of generating chiral photons in scattering and luminescence. Our findings provide a theoretical guideline for designing chiral photon devices and contribute to the understanding of chiral plasmon-emitter interaction.

摘要

通过将光限制在深亚波长尺度以匹配量子发射器的特征尺寸,等离子体纳米腔可以在强度、方向性以及偏振方面有效地赋予光发射独特的性质。就此而言,非手性量子发射器可以通过与具有本征或外在手性的等离子体纳米腔耦合来产生手性光子。作为手性光子纯度的一个重要指标,圆偏振度(DCP)通常受到各种散射因素的调节,如纳米腔设计、发射器类型和耦合策略。手性光子产生的物理机制,尤其是当等离子体和发射器进入强耦合 regime 时,研究较少。在本文中,我们将耦合振荡器和 Jaynes-Cummings 模型扩展到手性形式,以便在单一理论框架内考虑上述因素,并研究了等离子体纳米腔 - 发射器混合系统从弱耦合到强耦合的手性光学性质。结果表明,圆差分散射和显著散射 DCP 都依赖于通过打破发射器的镜面对称性产生的本征手性,因此可以通过耦合强度进行调节。然而,发光 DCP(高达 87%)与裸纳米腔的外在手性密切相关,且与耦合强度无关。因此,这些结果揭示了在散射和发光中产生手性光子的两种不同物理机制。我们的发现为设计手性光子器件提供了理论指导,并有助于理解手性等离子体 - 发射器相互作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cd9e/11501219/edfbb1120cd7/j_nanoph-2023-0738_fig_001.jpg

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